Network system

ABSTRACT

Provided is a network system capable of effectively managing an energy source.

BACKGROUND

The present disclosure relates to a network system.

In general, a network system may comprise a plurality of components. Twoor more component may configure the other component. The plurality ofcomponent may perform wired or wireless communication by means of acommunication unit.

SUMMARY

Embodiments provide a network system.

In one embodiment, a network system comprises: a first component and asecond component; and a communication unit configured to allowcommunication between the first component and the second component,wherein communication information between the first component and thesecond component comprises information related to energy, and thecommunication unit stores information received from the first componentand information received from the second component.

In another embodiment, a network system comprises: a first component anda second component; and a communication unit configured to allowcommunication between the first component and the second component,wherein the communication unit generates a command for performing thefunction of at least one of the first and second components.

The details of one or more embodiments are set forth in the accompanyingdrawings and the description below. Other features will be apparent fromthe description and drawings, and from the claims.

BRIEF DESCRIPTION OF THE DRAWINGS

FIG. 1 is a view schematically showing an example of a network systemaccording to the present disclosure.

FIG. 2 is a block diagram schematically showing an example of thenetwork system according to the present disclosure.

FIG. 3 is a block diagram showing an information transmission process onthe network system according to the present disclosure.

FIG. 4 is a view showing the communication structure of two componentsthat constitute the network system according to a first embodiment.

FIG. 5 is a block diagram showing the detailed configuration of acommunication device that constitutes a communication unit.

FIG. 6 is a view showing a communication performing process between aspecific component and a communication device according to the firstembodiment.

FIG. 7 is a view showing a communication performing process between aspecific component and a communication device according to a secondembodiment.

DETAILED DESCRIPTION OF THE EMBODIMENTS

Reference will now be made in detail to the embodiments of the presentdisclosure, examples of which are illustrated in the accompanyingdrawings. The invention may, however, should not be construed as beinglimited to the embodiments set forth herein; rather, that alternateembodiments included in other retrogressive inventions or falling withinthe spirit and scope of the present disclosure will fully convey theconcept of the invention to those skilled in the art.

All terms used herein have the same meanings as general terms understoodby those of ordinary skill in the art. If the terms used herein collidewith the general terms, the terms used herein take priority over thegeneral terms. While the present disclosure has been particularly shownand described with reference to exemplary embodiments thereof, it willbe understood by those of ordinary skill in the art that various changesin form and details may be made therein without departing from thespirit and scope of the present disclosure as defined by the followingclaims. Like reference numerals refer to like elements throughout.

FIG. 1 is a view schematically showing an example of a network systemaccording to the present disclosure.

The network system is a system for managing an energy source such aselectricity, water or gas. The energy source means one of which amountgenerated or used can be metered. Therefore, even a source not mentionedabove may be used as the energy source. Hereinafter, electricity will bedescribed as an example of the energy source, and details of thisspecification may be identically applied to other energy sources.

Referring to FIG. 1, a network system according to an embodimentincludes a power plant for producing electricity. The power plant mayinclude a power plant for producing electricity through a thermal powergeneration or nuclear power generation and a power plant using waterpower, sunlight power, wind power or the like which is eco-friendlyenergy.

The electricity produced in the power plant is transmitted to asub-control center through a power transmission line, and thesub-control center transmits the electricity to a substation so that theelectricity is distributed to customers such as houses or offices.

Electricity produced by the eco-friendly energy is also transmitted tothe substation so as to be distributed to each of the customers. Theelectricity transmitted from the substation is distributed to each ofthe offices or houses through electricity power storage, or is directlydistributed to each of the offices or houses.

In a house using a home area network (HAN), electricity may be producedby itself through sunlight, fuel cells built in a plug-in hybridelectric vehicle (PHEV), or the like. Also, the produced electricity maybe stored or distributed, or surplus electricity may be resold to theoutside world.

The network system may include a smart meter for detecting the amount ofelectricity used in each customer (house, office or the like) in realtime, and an advanced metering infrastructure (AMI) for metering theamount of electricity used in a plurality of customers.

The network system may further include an energy management system (EMS)for managing energy. The EMS may generate information on operations ofone or more components with respect to energy (production of energy,distribution of energy, usage of energy, storage of energy, and thelike). The EMS may generate at least a command for the operations of thecomponents.

In this specification, a function or solution performed by the EMS maybe referred to as an energy management function or energy managementsolution.

In the network system, one or more EMSs may be provided as a separateconfiguration, or the EMS may be included as an energy managementfunction or energy management solution in one or more components.

FIG. 2 is a block diagram schematically showing an example of thenetwork system according to the present disclosure.

Referring to FIGS. 1 and 2, the network system according to the presentdisclosure is configured by a plurality of components. For example, thecomponents of the network system are a power plant, a substation, asub-control center, an EMS, electric home appliances, a smart meter, astorage battery, a web server, an AMI, a home server, and the like.

In the present disclosure, each of the components may be configured by aplurality of sub-components. As an example, in a case of one componentis an electric home appliance, sub-components may be a microcomputer(MICOM), a heater, a display and the like. That is, all that perform aspecific function may be components in the present disclosure, and suchcomponents constitute the network system of the present disclosure.

Two components may communicate with each other by means of acommunication unit. One network may be one component or may beconfigured by a plurality of components.

In this specification, the network system in which communicationinformation is related to an energy source may be referred to as anenergy grid.

A network system according to an embodiment may include a utility areanetwork (UAN) 10 and a home area network (HAN) 20. The UAN 10 and theHAN 20 may perform wired or wireless communication by means of acommunication unit.

In this specification, the term “home” means not only a household as alexical meaning but also a group in which specific components such asbuildings or companies gather. Also, the term “utility” means a group inwhich specific components outside the home gather.

The UAN 10 includes an energy generation component 11 for generatingenergy, an energy distribution component 12 for distributing ortransmitting energy, an energy storage component 13 for storing energy,an energy management component 14 for managing energy, and an energymetering component 15 for metering information related to energy.

In a case where one or more components that constitute the UAN 10consume energy, the components that consume the energy may be energyconsumption components.

The energy generation component 11 may be a power plant as an example.The energy distribution component 12 distributes or transmits energygenerated in the energy generation component 11 and/or energy stored inthe energy storage component 13 to the energy consumption component 26that consumes the energy. The energy distribution component 12 may be apower transmitter, substation, sub-control center, or the like.

The energy storage component 13 may be a storage battery, and the energymanagement component 14 generates information for driving one or more ofthe energy generation component 11, the energy distribution component12, the energy storage component 13 and the energy consumption component26, related to energy. The energy management component 14 may generateat least a command for the operation of a specific component.

The energy management component 14 may be an EMS. The energy meteringcomponent 15 may meter information related to the generation of energy,the distribution of energy, the usage of energy, the storage of energy,and the like. The energy metering component 15 may be an AMI as anexample. The energy management component 14 may be a separateconfiguration, or may be included in another component as an energymanagement function.

The UAN 10 may receive information or may transmit information by aterminal component (not shown). That is, information generated ortransferred in a specific component that constitutes the UAN 10 may betransmitted to the HAN 20 through the terminal component, or informationgenerated or transferred in another component that constitutes the HAN20 may be received to the UAN 10 through the terminal component.

Two components that constitute the UAN 10 may communicate with eachother by means of a communication unit.

The HAN 20 includes an energy generation component 21 for generatingenergy, an energy distribution component 22 for distributing energy, anenergy storage component 23 for storing energy, an energy managementcomponent 24 for managing energy, an energy metering component 25 formetering information related to energy, an energy consumption component26 for consuming energy, a central management component 27 forcontrolling a plurality of components, and an energy grid assistancecomponent 28.

The energy generation component 21 may be a home power generator, andthe energy storage component 23 may be a storage battery. The energymanagement component 24 may be an EMS. The energy metering component 25may meter information related to the generation of energy, thedistribution of energy, the usage of energy, the storage of energy, andthe like. The energy metering component 25 may be a smart meter as anexample. The energy consumption component 26 may be, as an example, anelectric home appliance or a heater, motor, display or the like, whichconstitutes the electric home appliance. In this embodiment, there is nolimitation in the kind of the energy consumption component 26.

The energy management component 24 may be provided as a separateconfiguration or may be included in another component as an energymanagement function.

The energy generation component 21, the energy distribution component 22and the energy storage component 23 may be individual components, or mayconstitute a single component.

The central management component 27 may be, as an example, a home serverfor controlling a plurality of electric home appliances.

The energy grid assistance component 28 is a component having a primaryfunction while performing an additional function for the energy grid.For example, the energy grid assistance component 28 may be a webservice providing component (e.g., a computer or the like), mobiledevice, television, or the like.

Two components that constitute the HAN 20 may communicate with eachother by means of a communication unit.

The energy generation components 11 and 21, the energy distributioncomponents 12 and 22, the energy storage components 13 and 23, theenergy management components 14 and 24, the energy metering components15 and 25, the energy consumption component 26 and the centralmanagement component 27 may independently exist, or two or more of themmay constitute a single component.

For example, the energy management component 14 or 24, the energymetering component 15 or 25 and the central management component 27 mayexist as single components so as to be configured as a smart meter, anEMS and a home server, which perform their functions, respectively.Alternatively, the energy management component 14 or 24, the energymetering component 15 or 25 and the central management component 27 mayconstitute a single system.

When a function is performed, it may be sequentially performed in aplurality of components and/or communication units. For example, anenergy management function may be sequentially performed in the energymanagement component, the energy metering component and the energyconsumption component.

In the network system, a plurality of UANs 10 may communicate with asingle HAN 20, and a single UAN 10 may communicate with a plurality ofHANs 20.

The component with a specific function, which constitutes the UAN andthe HAN, may be configured as a plurality of components. For example,the energy generation component, the energy consumption component or thelike may be configured as a plurality of components.

FIG. 3 is a block diagram showing an information transmission process onthe network system according to the present disclosure.

Referring to FIG. 3, in the network system according to the presentdisclosure, a specific component 30 may receive information related toenergy (hereinafter, referred to as energy information 40) by means of acommunication unit. The specific component 30 may further receiveadditional information (environment information, time information andthe like) by means of the communication unit. In this instance, theinformation may be received from another component. That is, at leastenergy information is contained in the received information.

The specific component 30 may be a component that constitutes the UAN 10or a component that constitutes the HAN 20.

As described above, the energy information 40 may be one of informationrelated to electricity, water, gas and the like.

For example, the kind of information related to the electricity mayinclude time-based pricing, curtailment, grid emergency, gridreliability, energy increment, operation priority, and the like.

The information may be divided into scheduled information previouslyproduced based on previous information, and real-time informationchanged in real time. The scheduled information and the real-timeinformation may be divided by whether or not predict information afterthe current time (in the future).

The energy information 40 may be transmitted/received as a true or falsesignal such as a Boolean signal on the network system, or may betransmitted/received as a real price. Alternatively, the energyinformation 40 may be transmitted/received by being divided into aplurality of levels.

The energy information 40 may be divided into time of use (TOU)information, critical peak pattern (CPP) information or real timepattern (RTP) information according to the change in the pattern of datawith respect to time.

According to the TOU information, a data is changed step by stepdepending on time. According to the CPP information, a data is changedstep by step or in real time depending on time, and emphasis isdisplayed at a specific point of time. According to RTP information, adata is changed in real time depending on time.

In a case where the energy information is time-based pricing informationas an example, the time-based pricing information is changed. Thetime-based pricing information may be transmitted/received as a true orfalse signal such as a Boolean signal on the network system, or may betransmitted/received as a real price. Alternatively, the time-basedpricing information may be transmitted/received by being divided into aplurality of levels.

In a case where the specific component 30 receives a true or falsesignal such as a Boolean signal, one signal may be recognized as anon-peak signal, and the other signal may be recognized as an off-peaksignal.

Alternatively, the specific component 30 may recognize information on atleast one drive, which contains the time-based information, and mayrecognize an on-peak or off-peak signal by comparing the value of therecognized information with the value of reference information.

For example, in a case where the specific component 30 recognizesinformation divided into levels or real pricing information, itrecognizes an on-peak or off-peak signals by comparing the value of therecognized information with the value of reference information.

In this case, the value of the information on drive may be at least oneof time-based pricing, electric energy, the variation of time-basedpricing, the variation of electric energy, the average of time-basedpricing and the average of electric energy. The value of referenceinformation may be at least one of an average, the average betweenmaximum and minimum values of power information during a predeterminedperiod of time and the reference variation of power information duringthe predetermined period of time (e.g., the slope of consumed electricenergy per unit time).

The value of reference information may be determined in real time or maybe previously determined. The value of reference information may bedetermined on the UAN or may be determined on the HAN (a customer'sdirect input or an input from the energy management component, thecentral management component or the like).

In a case where the specific component 30 (e.g., the energy consumptioncomponent) recognizes an on-peak signal (e.g., at a point of time ofrecognition), an output may be determined as zero (stop or maintenanceof a stop state) or may be decreased. If necessary, the output may berestored or increased. The driving scheme of the specific component maybe previously determined before the specific component is operated, ormay be changed when the specific component recognizes an on-peak signalposterior to the start of operation.

Alternatively, in a case where the specific component 30 recognizes anon-peak signal (e.g., at a point of time of recognition), the output ismaintained under an operable condition. In this case, the operablecondition means that the value of the information on drive is less thana predetermined reference. The value of the information on drive may betime-based pricing, consumed electric energy, operation time, or thelike. The predetermined reference may be a relative or absolute value.

The predetermined reference may be determined in real time or may bepreviously determined. The predetermined reference may be determined onthe UAN or may be determined on the HAN (a customer's direct input or aninput from the energy management component, the central managementcomponent or the like).

Alternatively, in a case where the specific component 30 recognizes anon-peak signal (e.g., at a point of time of recognition), the output maybe increased. However, although the output is increased at the point oftime when the specific component recognizes the on-peak signal, thetotal output amount of the specific component during the entire driveperiod may be decreased or maintained as compared with that when thespecific component is operated at a normal output level. Alternatively,although the output is increased at the point of time when the specificcomponent recognizes the on-peak signal, the total consumed power ortotal time-based pricing of the specific component during the entireoperation period may be decreased as compared that when the specificcomponent is operated at a normal output level.

In a case where the specific component 30 recognizes an off-peak signal(e.g., at a point of time of recognition), the output may be increased.For example, in a case where the operation reservation of the specificcomponent is set up, the drive of the specific component may be startedbefore the setup time, or a component having a large output among aplurality of components may be first driven. In a case where thespecific component is a refrigerator, supercooling may be performed byincreasing an output as compared with the existing output (change in thestate of cool air that is a medium for performing the function of therefrigerator). In a case where the specific component is a washingmachine or washer, hot water may be stored by driving a heater earlierthan the time when the heater is to be operated (storage of hot waterthat is an additional medium for performing the function of the washingmachine or washer). Alternatively, in a case where the specificcomponent is a refrigerator, cool air may be stored in a separatesupercooling chamber by increasing an output as compared with theexisting output. Alternatively, in a case where the specific componentrecognizes an off-peak signal (e.g., at a point of time of recognition),electricity may be stored.

The curtailment information is information related to a mode in whichthe specific component is stopped or a small amount of time-basedpricing is taken. As an example, the curtailment information may betransmitted/received as a true or false signal such as a Boolean signalon the network system.

If the specific component 30 recognizes curtailment information, theoutput may be determined as zero (stop or maintenance of a stop state)or may be decreased as described above.

The grid emergency information is information related to a power failureor the like. As an example, the grid emergency information may betransmitted/received as a true or false signal such as a Boolean signalon the network system. The information related to a power failure or thelike has a relation with the reliability of a component using energy.

In a case where the specific component 30 recognizes grid emergencyinformation, it may be immediately shut down.

The grid reliability information is information related to the supplyamount of electricity supplied or information related to the quality ofelectricity. The grid reliability information may betransmitted/received as a true or false signal such as a Boolean signalon the network system, or may be determined by a component (e.g., anelectric home appliance) through the frequency of AC power supplied tothe component.

That is, if a frequency lower than the frequency of AC power supplied tothe component is sensed, it may be determined that the amount ofelectricity supplied is small (information on the deficiency of theamount of electricity supplied). If a frequency higher than thefrequency of AC power supplied to the component is sensed, it may bedetermined that the amount of electricity supplied is large (informationon the excess of the amount of electricity supplied).

In a case where the specific component recognizes shortage of the amountof electricity or poor quality of electricity in the grid reliabilityinformation, an output may be determined as zero (stop or maintenance ofa stop state) or may be decreased. If necessary, the output may berestored or increased.

The energy increment information is information related to a state thatsurplus electricity is generated because the amount of electricity usedby a component is less than that of power generation. As an example, theenergy increment information may be transmitted/received as a true orfalse signal such as a Boolean signal on the network system.

In a case where the specific component 30 recognizes energy incrementinformation, the output may be increased. For example, in a case wherethe operation reservation of the specific component is set up, the driveof the specific component may be started before the setup time, or acomponent having a large output among a plurality of components may befirst driven. In a case where the specific component is a refrigerator,supercooling may be performed by increasing an output as compared withthe existing output. In a case where the specific component is a washingmachine or a washer, hot water may be stored by driving a heater earlierthan the time when the heater is to be operated.

Each of the kinds of information related to energy may be divided intofirst information 41 that is raw information, second information 42 thatis refined information, and third information 43 that is information forperforming the function of the specific component. That is, the firstinformation is a raw data, the second information is a refined data, andthe third information is a command for performing the function of thespecific component.

Specifically, in a case where the first information is raw informationon time-based pricing, the second information may be refined informationon the time-based pricing. The refined information on the time-basedpricing is information in which the time-based pricing is divided into aplurality of levels or analysis information. The third information is acommand generated based on the second information.

The specific component may generate, transmit or receive one or more ofthe first to third information. The first to third information are notnecessarily transmitted or received in sequence. Only a plurality ofpieces of third information without the first and second information maybe transmitted in sequence or parallel. Alternatively, the first andthird information may be transmitted or received together, the secondand third information may be transmitted or received together, or thefirst and second information may be transmitted or received together.

As an example, in a case where the specific component receives the firstinformation, it may transmit the second information or may transmit thesecond and third information.

In a case where the specific information receives only the thirdinformation, it may generate and transmit new third information.

Meanwhile, in the relation between two pieces of information, one is amessage and the other is a response for the message. Thus, each of thecomponents that constitute the network system may transmit or receive amessage. In a case where each of the components receives a message, itmay respond to the message. Therefore, in the case of an individualcomponent, the transmission of a message is a relative concept with theresponse for the message.

The message may include a data (first or second information) and/or acommand (third information).

The command (third information) may include a command for storing thedata, a command for generating the data, a command for processing thedata (including the generation of an additional data), a command forgenerating an additional command, a command for transmitting theadditionally generated command, a command for transmitting a receivedcommand, and the like.

In this specification, the response for the received message meansstorage of the data, processing of the data (including generation of anadditional data), generation of a new command, transmission of the newlygenerated command, simple transmission of a received command (includinggeneration of a command for transmitting the received command to anothercomponent), operation, transmission of the stored information,transmission of an acknowledge message (acknowledge character ornegative acknowledge character), or the like.

For example, in a case where the message is first information, thespecific component that receives the first information may generatesecond information by processing the first information, or may generatethe second information and new third information, as a response for themessage.

FIG. 4 is a view showing the communication structure of two componentsthat constitute the network system according to a first embodiment. FIG.5 is a block diagram showing the detailed configuration of acommunication device that constitutes a communication unit.

Referring to FIGS. 2, 4 and 5, first and second component 61 and 62 thatconstitute the network system may perform wired or wirelesscommunication by means of a communication unit 50. The first and secondcomponents 61 and 62 may perform unidirectional or bidirectionalcommunication.

In a case where the two components 61 and 62 perform wiredcommunication, the communication unit 50 may be a simple communicationline or power line communication means. It will be apparent that thepower line communication means may include communicators (e.g., a modemor the like) respectively connected to the two components.

In a case where the two components 61 and 62 perform wirelesscommunication, the communication unit 50 may include a firstcommunicator 51 connected to the first component 61 and a secondcommunicator 52 connected to the second component 62. In this case, thefirst and second communicators 51 and 52 perform wireless communicationwith each other.

The first component 61 may be a component that constitutes the UAN 10 ora component that constitutes the HAN 20.

The second component 62 may be a component that constitutes the UAN 10or a component that constitutes the HAN 20.

The first and second components 61 and 62 may be the same kind ofcomponent or different kinds of components.

The first and second communicators 51 and 52 may have the samestructure. Hereinafter, the first and second communicators 51 and 52will be referred to as a communicator 51 and 52.

The communicator 51 and 52 may include a first communication part 511for communication with the first component 61, a second communicationpart 512 for communication with the second component 62, a memory 513for storing information received from the first component 61 andinformation received from the second component 62, a processor 516 forperforming information processing, and a power supply 517 for supplyingpower to the communicator 51 and 52.

Specifically, the communication language (or scheme) of the firstcommunication part 511 may be identical to or different from that of thesecond communication part 512.

Two kinds of information respectively received from the two componentsmay be stored in the memory 513. The two kinds of information may bestored in a single sector or may be respectively stored in sectors. Inany case, an area in which the information received from the firstcomponent 61 may be referred to as a first memory 514, and an area inwhich the information received from the second component 62 may bereferred to as a second memory 515.

The processor 516 may generate first information or generate second andthird information based on information received from the component oranother communicator.

As an example, in a case where the communicator 51 and 52 receives thefirst information, it may generate information or sequentially generatethe information and the second information by processing a data.Alternatively, in a case where the communicator 51 and 52 receives thefirst information, it may generate the second and third information byprocessing a data. In a case where the communicator 51 and 52 receivesthe third information, it may new third information.

For example, in a case where the second component is an energyconsumption component (electric home appliance, component thatconstitutes the electric home appliance, or the like), the secondcommunicator may generate a command for reducing energy consumption. Ina case where the second component is an energy generation component,energy distribution component or energy storage component, the secondcommunicator 52 may generate a command for energy generation time,generation amount, energy distribution time, distribution amount, energystorage time, storage amount or the like. In this case, the secondcommunicator 52 serves as an energy management component.

The power supply 517 may receive electricity supplied from thecomponents 61 and 62 or may receive electricity supplied from a separatepower source. Alternatively, the power supply 517 may be a battery orthe like.

FIG. 6 is a view showing a communication performing process between aspecific component and a communication device according to the firstembodiment.

Hereinafter, for convenience of illustration, a communication performingprocess between the second component 62 and the second communicator 52will be described as an example. A communication performing processbetween the first component 61 and the first communicator 51 may beidentically applied to that between the second component 62 and thesecond communicator 62.

Referring to FIGS. 5 and 6, the second communicator 52 receives amessage from the first communicator 51. The second communicator 52 mayreceive a message in real time or by periods without transmitting arequest for the message to the first communicator 51, or may receive amessage as a response for the request for the message to the firstcommunicator 51. Alternatively, the second communicator 52 may receive amessage by requesting information to the first communicator 51 at apoint of time when it is initially turned on. Then, the secondcommunicator 52 may receive information in real time or by periods fromthe first communicator 51 without a request for information.

The information received from the first communicator 51 is stored in thememory 513. The second communicator 52 transmits a message to the secondcomponent 62 as a response for the message. In this instance, themessage transmitted to the second component 62 relates to newinformation different from the information previously stored in thememory 513, or information generated in the processor 516.

Then, the second component 62 transmits an acknowledge character (ack)or negative acknowledge character (Nak) to the second communicator 52 asa response for the message. The second component 62 performs a function(generation of a command, operation, or the like) based on the receivedinformation, or waits for performing the function.

Meanwhile, the second communicator 52 requests component information tothe second component 62 in real time or by periods. As an example, thecomponent information may be component state information or informationon a component unique code, a manufacturer, a service name code, anelectricity use amount, and the like. Then, the second component 62transmits component information to the second communicator 52 as aresponse for the request. The component information is stored in thememory 513 of the second communicator 52.

If the second communicator 52 receives a message for requesting thecomponent information from the first communicator 51, it transmits thecomponent information stored in the memory 513 to the first communicator51 as a response for the message. Alternatively, the second communicator52 transmits the component information stored in the memory 513 to thefirst communicator 51 in real time or by periods.

The second communicator 52 may transmit the information of the firstcomponent, stored in the memory, to the first component together withthe information received from the first component. Alternatively, thesecond communicator 52 may transmit the information of the firstcomponent, stored in the memory, to the first component, separately fromtransmitting the information received from the first component.

The second communicator 52 stores the information of the secondcomponent 62 in the memory 513. Hence, in a case where the secondcommunicator 52 receives a message for requesting the componentinformation from the first communicator 51, it transmits the componentinformation stored in the memory 513 directly to the first communicator51 without a request for information to the second component 62, andthus, the communication load of the second component 62 can be reduced.That is, the second component becomes a virtual component.

FIG. 7 is a view showing a communication performing process between aspecific component and a communication device according to a secondembodiment.

Hereinafter, for convenience of illustration, a communication performingprocess between the second component 62 and the second communicator 52will be described as an example. A communication performing processbetween the first component 61 and the first communicator 51 may beidentically applied to that between the second component 62 and thesecond communicator 62.

Referring to FIGS. 5 and 7, the second communicator 52 receives amessage from the first communicator 51. The second communicator 52 mayreceive a message in real time or by periods without transmitting arequest for the message to the first communicator 51, or may receive amessage as a response for the request for the message to the firstcommunicator 51. Alternatively, the second communicator 52 may receive amessage by requesting information to the first communicator 51 at apoint of time when it is initially turned on. Then, the secondcommunicator 52 may receive information in real time or by periods fromthe first communicator 51 without a request for information.

If the second communicator 52 receives a message for requestinginformation from the second component 62, it transmits a message to thesecond component 62 as a response for the message for requesting theinformation. In this instance, the message transmitted to the secondcomponent 62 relates to new information different from the informationpreviously stored in the memory 513, or information generated in theprocessor 516. Alternatively, the information transmitted to the secondcomponent 62 may be information received from the first component.

The second component 62 performs a function based on the receivedinformation or waits for performing the function.

Meanwhile, the second component 62 transmits component information tothe second component 62 in real time or by periods. As an example, thecomponent information may be component state information or informationon a component unique code, a manufacturer, a service name code, anelectricity use amount, and the like.

As described above, the electric use amount may be detected by the smartmeter. In a case where the electricity use amount is included in theinformation of the second component 62, the correction of an actualelectricity use amount may be performed by comparing the information ofthe second component 62 with the information of the smart meter.

Then, the second communicator 52 stores the information of the secondcomponent 62 in the memory 513, and transmits an acknowledge character(ack) or negative acknowledge character (Nak) to the second component 62as a response for the message.

If the second communicator 52 receives a message for requestingcomponent information from the first communicator 51, it transmits theinformation of the second component 62, stored in the memory 513, to thefirst communicator 51 as a response for the message. Alternatively, thesecond communicator 52 the information of the second component 62,stored in the memory 513, to the first communicator 51 in real time orby periods.

The second communicator 52 stores the information of the secondcomponent 62 in the memory 513. Hence, in a case where the secondcommunicator 52 receives the message for requesting the componentinformation from the first communicator 51, it transmits the informationstored in the memory 513 directly to the first communicator 51 withouttransmitting a request for information to the second component 62, andthus, the communication load of the second component 62 can be reduced.That is, the second communicator 52 becomes a virtual component.

<Applications>

In the following descriptions, the first and second components may bereversed to each other, and therefore, overlapping descriptions will beomitted. For example, in a case where the first component is an electrichome appliance and the second component is an energy managementcomponent, description in a case where the first component is an energymanagement component and the second component is an electric homeappliance will be omitted.

Information transmitted/received by each of the components may be allthe information described above. Particularly, specific information maybe transmitted/received for each of the components.

The energy generation components 11 and 21 may transmit/receiveinformation related to energy generation amount, and the like. Theenergy distribution components 12 and 22 may transmit/receiveinformation related to energy distribution amount, distribution time,and the like. The energy storage components 13 and 23 maytransmit/receive information related to energy storage amount, storagetime, and the like. The energy metering components 15 and 25 maytransmit/receive information related to energy consumption amount, andthe like. The energy management components 14 and 24 maytransmit/receive information related to energy generation, distribution,storage, consumption, cost, reliability, emergency situation, and thelike.

(1) Case Where Second Component is One Component of HAN

The second component 62 may be an energy consumption component 26, e.g.,a heater, motor, compressor, display or the like. In this case, thefirst component 61 may be a MICOM or energy consumption component 26 asan example. The MICOM or energy consumption component 26 may transmit amessage for reducing energy consumption to another energy consumptioncomponent 26. Then, the another energy consumption component 26 mayperform an operation for reducing energy, for example.

As another example, the energy consumption component 26 may be anelectric home appliance. In this case, the first component 61 may be anenergy storage component 23, an energy consumption component 26(electric home appliance), an energy management component 24, an energymetering component 25, a central management component 27, a web servercomponent 28, or a component that constitutes the UAN 10.

In this instance, an energy management function may be included or notincluded in the first component 61 except the energy managementcomponent 24.

In a case where an energy management function or solution is notincluded in the first component 61, it may be included in thecommunication unit or may be included in the MICOM of the secondcomponent 62. In this case, the energy management function is related tothe consumption of energy.

As still another example, the second component 62 may be an energygeneration component 21, an energy distribution component 22 or anenergy storage component 23. In this case, the first component 61 may bean energy management component 24, a central management component 27, aweb server component 28 or a component that constitutes the UAN 10.

A message may be transmitted to the second component 62. Here, themessage may include energy generation time, generation amount or thelike, energy distribution time, distribution amount or the like, andenergy storage time, storage amount or the like.

In this instance, an energy management function may be included or notincluded in the first component 61 except the energy managementcomponent 24.

In a case where an energy management function or solution is notincluded in the first component 61, it may be included in thecommunication unit. In this case, the energy management function isrelated to the generation, distribution and storage of energy.

As still another example, the second component may be an energy meteringcomponent 25. In this case, the first component 61 may be a centralmanagement component 27, a web server component 28 or a component thatconstitutes the UAN 10.

An energy management function may be included or not included in theenergy metering component. In a case where the energy managementfunction is included in the energy metering component 25, the energymetering component 25 performs the same operation as the EMS.

In a case where an energy management function or solution is included inthe energy metering component 25, it may be included in thecommunication unit or may be included in the second component 62.

As still another example, the second component 62 may be a centralmanagement component 27. In this case, the first component 61 may be aweb server component 28 or a component that constitutes the UAN 10.

(2) Case Where Second Component is One Component of UAN

The first component 61 may be a component that constitutes the UAN 10.In this case, the first and second components 61 and 62 may be the samekind of component or different kinds of components.

An energy management function may be included in the first component 61,the second component 62 or the communication unit.

The energy management function included in a specific component or theenergy management function included in the energy management component14 may be related to generation amount, distribution amount, storageamount, energy use amount of a component that constitutes the HAN 20.

In this specification, an example capable of constituting the networksystem has been described. However, any component not mentioned in thisspecification may be a first or second component that performscommunication through the communication unit. For example, an automobilemay be a second component, and the energy management component 24 may bea first component.

(3) Case Where One of First and Second Components Communicates withThird Component

Although the communication between two components has been described inthe aforementioned examples, each of the first and second components mayperform communication with one or more components (a third component toan n-th component).

In this case, the relation of the first or second component thatperforms communication with the third component and the like may be oneof the aforementioned examples.

For example, the first component may be a component that constitutes theUAN, the second component may be an energy management component 24 thatcommunicates with the first component, and the third component may be anenergy consumption component 26 that communicates with the secondcomponent. In this instance, one or more of the three components maycommunicate with another component.

In this specification, the first to n-th components may be componentsthat constitute the UAN or components that constitute the HAN.Alternatively, a portion of the components may be components thatconstitute the UAN, or another portion of the components may becomponents that constitute the HAN.

Although embodiments have been described with reference to a number ofillustrative embodiments thereof, it should be understood that numerousother modifications and embodiments can be devised by those skilled inthe art that will fall within the spirit and scope of the principles ofthis disclosure. More particularly, various variations and modificationsare possible in the component parts and/or arrangements of the subjectcombination arrangement within the scope of the disclosure, the drawingsand the appended claims. In addition to variations and modifications inthe component parts and/or arrangements, alternative uses will also beapparent to those skilled in the art.

1. A network system comprising: a first component and a secondcomponent; and a communication unit configured to allow communicationbetween the first component and the second component, whereincommunication information between the first component and the secondcomponent comprises information related to energy, and the communicationunit stores information received from the first component andinformation received from the second component.
 2. The network systemaccording to claim 1, wherein at least one of the first and secondcomponents transmit information to the communication unit in real timeor by periods.
 3. The network system according to claim 1, wherein atleast one of the first and second components transmit information to thecommunication unit as a response for the request from the communicationunit.
 4. The network system according to claim 1, wherein if thecommunication unit receives a message for requesting componentinformation from one of the first and second components, thecommunication unit transmits the component information related to theother of the first and second components to the other of the first andsecond components.
 5. The network system according to claim 4, whereinone of the first and second components receiving the componentinformation transmits an acknowledge message.
 6. The network systemaccording to claim 1, wherein the communication unit can transmitinformation received from one of the first and second components to theother of the first and second components.
 7. The network systemaccording to claim 1, wherein the communication unit comprises a firstcommunicator for communicating with the first component and a secondcommunicator for communicating with the second component.
 8. The networksystem according to claim 7, wherein at least one of the firstcommunicator and the second communicator comprises a memory for storinginformation, the memory comprises a first memory for storing informationrelated to the first component and a second memory for storinginformation related to the second component.
 9. A network systemcomprising: a first component and a second component; and acommunication unit configured to allow communication between the firstcomponent and the second component, wherein the communication unitgenerates a command for performing the function of at least one of thefirst and second components.
 10. The network system according to claim9, wherein the communication generates the command from a raw data. 11.The network system according to claim 9, wherein the communicationgenerates the command from a refined data.
 12. The network systemaccording to claim 9, wherein the command relates to a functionperformance of at least one of the first and second components relatedto energy.
 13. The network system according to claim 9, wherein thecommand is a response as a response for a message received at thecommunication unit.
 14. The network system according to claim 9, whereinthe command is a newly generated command based on command received atthe communication unit.
 15. The network system according to claim 1,wherein the communication unit generates the command based oninformation transferred from one of the first and second components, andthe information comprises at least one of a raw data, a refined data anda command.
 16. The network system according to claim 1, wherein thecommunication unit comprises a first communicator for communicating withthe fist component and a second communicator for communicating with thesecond component.